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I wrote the below code to see if an array has 2 numbers that account to a sum. I don't know how to capture the elements that contribute to that sum. Any thoughts

Example = {1,11,4,7,8,10} Sum = 21 Count=2

This code returns true or false but does not capture the numbers that contribute to the sum. How can I do that?

public static boolean isSum(int[] a,int val,int count,int index){
    if(count == 0 && val ==0){
        return true;
    }
    if(index>=a.length)
        return false;
    else{
        return isSum(a,val-a[index],count-1,index+1)||isSum(a,val,count,index+1);
    }
}

I appreciate all the beautiful solutions listed below. Was hacking around in the morning and found an elegant way to solve this problem for any number of elements that can account to the sum. Just wanted to share the solution here for your comments

public class IsSum {

static ArrayList<Integer> intArray;

public static void main(String[] args) {
    // TODO code application logic here
    int[] a = {1,44, 4, 7, 8, 10};
    intArray = new ArrayList<Integer>();
    if (isSum(a,54,2, 0)) {
        System.out.println("Is Present");
    }
    Iterator<Integer> arrayIter = intArray.iterator();
    while (arrayIter.hasNext()) {
        System.out.println(arrayIter.next());
    }
}

public static boolean isSum(int[] a, int val, int count, int index) {
    if (count == 0 && val == 0) {
        return true;
    }

    if (index >= a.length) {
        return false;
    } else {
        if (isSum(a, val - a[index], count - 1, index + 1)) {
            intArray.add(a[index]);
            return true;
        } else {
            return isSum(a, val, count, index + 1);
        }
    }
}

}

share|improve this question
1  
What do you mean by "2 numbers that account to a sum" ? – alfasin Aug 21 '13 at 4:01
    
Could you give an example? I am not able to understand what you mean – Karthik T Aug 21 '13 at 4:01
    
Ive added an example. Sorry about the ambiguity – Sindhuja Narasimhan Aug 21 '13 at 4:06
    
do you want to have the numbers that makes the sum ?? – Dileep Aug 21 '13 at 6:38
    
ie if sum =21 then it must return 10 and 11.. Is that what you are looking for..?? – Dileep Aug 21 '13 at 6:39
up vote 1 down vote accepted
/**
 * Class used to hold the result details.
 */
private static class Result {
    boolean isSum;

    int[][] pairs;

    int noOfPairs;

    Result(int value) {
        pairs = new int[value][2];
    }
}

public static Result isSum(int[] array, int val, int count) {
    Result result = new Result(count);
    int index = 0;
    for (int i = 0; i < array.length; i++) {
        for (int j = i + 1; j < array.length; j++) {
            //check if pair values add to given sum
            if (array[i] + array[j] == val) {
                int[] temp = new int[2];
                temp[0] = array[i];
                temp[1] = array[j];
                result.pairs[index++] = temp;
                result.noOfPairs++;
                count--;
                if (count == 0) {
                    //we got required no of pairs..now exit
                    result.isSum = true;
                    return result;
                }
            }
        }
    }
    return result;
}  
share|improve this answer

The patch is a bit ugly - but it works, if there's such two elements - the result will return the indexes of these elements in the array:

public static int[] isSum(int[] a,int val,int count,int index, int[] arr){
    int[] res = new int[2];
    if(count == 0 && val ==0){
        return arr;
    }
    else if(index >=a.length || count == 0) {
        return res;
    }
    else{
        res[0] = arr[0];
        res[1] = arr[1];
        if(count==1){
            arr[1] = index;
        }
        else{
            arr[0] = index;
        }
        int[] s1 = isSum(a,val-a[index],count-1,index+1, arr);
        int[] s2 = isSum(a,val,count,index+1, res);
        res = (s1[1] != 0 ? s1 : s2);
    }
    return res;
}

public static void main(String...args){
    int[] a = {1,11,4,7,8,10};
    int[] s = new int[2];
    int [] res = isSum(a, 21, 2, 0, s);
    System.out.println("result: "+(res[1] != 0));
    if((res[1] > 0)){
        System.out.print(res[0]+" "+res[1]);
    }
}

OUPUT

result: true
1 5

Another (and more elegant) way:

public static int[] isSum(int[] a,int val){
    int[] res = new int[2];
    for(int i=0; i<a.length; i++){
        int tmp = a[i];
        int index = search(a, val-tmp);
        if(index != -1){
            return new int[] {i, index};//success
        }
    }
    return res;//failure
}

private static int search(int[] a, int val) {
    for(int i=0; i<a.length; i++){
        if (a[i] == val) return i;
    }
    return -1;
}

public static void main(String...args){
    int[] arr = {1,2,3,11,4,7,10};
    int[] res = isSum(arr, 21);
    System.out.println("res: {"+res[0]+","+res[1]+"}");
}

OUTPUT

res: {3,6}

share|improve this answer
    
if i pass the count in the signature it would not do that. – Sindhuja Narasimhan Aug 21 '13 at 4:09
    
Example - a[] = {1,3,4,10} Signature- isSum(a,15,2,0) – Sindhuja Narasimhan Aug 21 '13 at 4:10
    
@SindhujaNarasimhan indeed you pass the count in the signature - but you didn't add a check to see that it's not > 2 (in that scenario you should return false oc) – alfasin Aug 21 '13 at 4:10
    
Change the example that you posted above to: Example = {1,12,4,7,8,10} Sum - 21. And it'll still return true since: 4+7+10 = 21 – alfasin Aug 21 '13 at 4:13
    
why does it qualify as a bug? if i stick to this way of writing the signature I can pass any count value and return the elements that account to that count. – Sindhuja Narasimhan Aug 21 '13 at 4:13

You must change the return type to (for example) an array, then you have to catch the returning result not return it directly, and if it's true capture the values by the given index then returning them in an array, and if it's false return a null array... testing the values of the returned array you will know if it's true or false and also will give you the values you need if it's true.

UPDATE:

public static int[] isSum(int[] a, int val, int count, int index) {
int[] results = new int[2];
results[0] = -1;
results[1] = -1;

if (count == 0 && val == 0) {
    results[0] = 0;
    results[1] = 0;
    return results;
}
if (index >= a.length)
    return results;
else {

    if (isSum(a, val - a[index], count - 1, index + 1) == results) {
        if (isSum(a, val, count, index + 1) == results) {
            return results;
        } else {
            results[0] = val;
            results[1] = a[index + 1];
            return results;
        }
    } else {
        results[0] = val - a[index];
        results[1] = a[index + 1];
        return results;
    }

}
}
share|improve this answer
    
can you show the example in code if it is not much trouble? Thanks ! – Sindhuja Narasimhan Aug 21 '13 at 4:49
    
i updated my answer with the code – Muhammed Refaat Aug 21 '13 at 5:13
public static boolean isSum(int[] arr,int val){
   int a,b=0;
   int c=0,d=0;
   boolean bol=false;
   for(a=0;a<arr.length;a++)
   {
       b=a+1;

   while(b<arr.length)
   {

       System.out.println(a+" "+b);

   if(arr[a]+arr[b]==val)
   {
       System.out.println(arr[a]+arr[b]);
   bol=true;
   c=a;
   d=b;
   break;
   }
   else
       b++;

   }

   }
   System.err.println(c+" "+d);
       return bol ;
    }
}
share|improve this answer

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